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Detection and Characterization of Abnormal Vascular Patterns in Automated Cervical Image Analysis

机译:自动宫颈图像分析中异常血管模式的检测与表征

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In colposcopy, mosaic and punctation are two major abnormal vessels associated with cervical intraepithelial neoplasia (CIN). Detection and characterization of mosaic and punctation in digital cervical images is a crucial step towards developing a computer-aided diagnosis (CAD) system for cervical cancer screening and diagnosis. This paper presents automated techniques for detection and characterization of mosaic and punctation vessels in cervical images. The techniques are based on iterative morphological operations with various sizes of structural elements, in combination with adaptive thresholding. Information about color, region, and shape properties is used to refine the detection results. The techniques have been applied to clinical data with promising results.
机译:在阴道镜检查中,马赛克和调节剂是与宫颈上皮内瘤形成(CIN)相关的两个主要异常血管。数字宫颈图像中的马赛克和调节的检测和表征是朝着开发用于宫颈癌筛查和诊断的计算机辅助诊断(CAD)系统的关键步骤。本文介绍了宫颈图像中马赛克和调节血管的自动化技术。该技术基于具有各种尺寸的结构元件的迭代形态操作,与自适应阈值相结合。有关颜色,区域和形状属性的信息用于改进检测结果。该技术已应用于具有有前途的结果的临床数据。

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